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Influence analysis in skew-Birnbaum–Saunders regression models and applications

Acceso Abierto
ID Minciencias: ART-0001436749-9
Ranking: ART-ART_C

Abstract:

In this paper, we propose a method to assess influence in skew-Birnbaum–Saunders regression models, which are an extension based on the skew-normal distribution of the usual Birnbaum–Saunders (BS) regression model. An interesting characteristic that the new regression model has is the capacity of predicting extreme percentiles, which is not possible with the BS model. In addition, since the observed likelihood function associated with the new regression model is more complex than that from the usual model, we facilitate the parameter estimation using a type-EM algorithm. Moreover, we employ influence diagnostic tools that considers this algorithm. Finally, a numerical illustration includes a brief simulation study and an analysis of real data in order to show the proposed methodology.

Tópico:

Statistical Distribution Estimation and Applications

Citaciones:

Citations: 48
48

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Información de la Fuente:

SCImago Journal & Country Rank
FuenteJournal of Applied Statistics
Cuartil año de publicaciónNo disponible
Volumen38
Issue8
Páginas1633 - 1649
pISSNNo disponible
ISSN1360-0532

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Artículo de revista